US11828633B2 - Measurement apparatus, measurement method, and computer-readable recording medium - Google Patents
Measurement apparatus, measurement method, and computer-readable recording medium Download PDFInfo
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- US11828633B2 US11828633B2 US17/275,445 US201917275445A US11828633B2 US 11828633 B2 US11828633 B2 US 11828633B2 US 201917275445 A US201917275445 A US 201917275445A US 11828633 B2 US11828633 B2 US 11828633B2
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- 238000005259 measurement Methods 0.000 title claims abstract description 110
- 238000000691 measurement method Methods 0.000 title claims description 14
- 239000007788 liquid Substances 0.000 claims abstract description 167
- 238000003973 irrigation Methods 0.000 claims description 54
- 230000002262 irrigation Effects 0.000 claims description 54
- 239000003337 fertilizer Substances 0.000 claims description 38
- 238000001514 detection method Methods 0.000 abstract description 54
- 238000004364 calculation method Methods 0.000 abstract description 46
- 239000003621 irrigation water Substances 0.000 description 54
- 238000003860 storage Methods 0.000 description 12
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 description 8
- 238000000034 method Methods 0.000 description 5
- 239000002689 soil Substances 0.000 description 4
- 230000005540 biological transmission Effects 0.000 description 3
- 238000005516 engineering process Methods 0.000 description 3
- 238000009313 farming Methods 0.000 description 3
- 238000004804 winding Methods 0.000 description 3
- 241000227653 Lycopersicon Species 0.000 description 2
- 235000007688 Lycopersicon esculentum Nutrition 0.000 description 2
- 230000000694 effects Effects 0.000 description 2
- 230000006870 function Effects 0.000 description 2
- 239000004065 semiconductor Substances 0.000 description 2
- 230000035945 sensitivity Effects 0.000 description 2
- 230000033228 biological regulation Effects 0.000 description 1
- 230000007423 decrease Effects 0.000 description 1
- 239000012530 fluid Substances 0.000 description 1
- 238000010801 machine learning Methods 0.000 description 1
- 239000000463 material Substances 0.000 description 1
- 230000003287 optical effect Effects 0.000 description 1
- 239000011347 resin Substances 0.000 description 1
- 229920005989 resin Polymers 0.000 description 1
- 239000008400 supply water Substances 0.000 description 1
- 235000013311 vegetables Nutrition 0.000 description 1
Images
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01L—MEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
- G01L9/00—Measuring steady of quasi-steady pressure of fluid or fluent solid material by electric or magnetic pressure-sensitive elements; Transmitting or indicating the displacement of mechanical pressure-sensitive elements, used to measure the steady or quasi-steady pressure of a fluid or fluent solid material, by electric or magnetic means
- G01L9/0026—Transmitting or indicating the displacement of flexible, deformable tubes by electric, electromechanical, magnetic or electromagnetic means
- G01L9/0027—Transmitting or indicating the displacement of flexible, deformable tubes by electric, electromechanical, magnetic or electromagnetic means using variations in ohmic resistance
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01F—MEASURING VOLUME, VOLUME FLOW, MASS FLOW OR LIQUID LEVEL; METERING BY VOLUME
- G01F1/00—Measuring the volume flow or mass flow of fluid or fluent solid material wherein the fluid passes through a meter in a continuous flow
- G01F1/05—Measuring the volume flow or mass flow of fluid or fluent solid material wherein the fluid passes through a meter in a continuous flow by using mechanical effects
- G01F1/34—Measuring the volume flow or mass flow of fluid or fluent solid material wherein the fluid passes through a meter in a continuous flow by using mechanical effects by measuring pressure or differential pressure
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01C—PLANTING; SOWING; FERTILISING
- A01C23/00—Distributing devices specially adapted for liquid manure or other fertilising liquid, including ammonia, e.g. transport tanks or sprinkling wagons
- A01C23/04—Distributing under pressure; Distributing mud; Adaptation of watering systems for fertilising-liquids
- A01C23/042—Adding fertiliser to watering systems
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01G—HORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
- A01G25/00—Watering gardens, fields, sports grounds or the like
- A01G25/16—Control of watering
-
- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01G—HORTICULTURE; CULTIVATION OF VEGETABLES, FLOWERS, RICE, FRUIT, VINES, HOPS OR SEAWEED; FORESTRY; WATERING
- A01G25/00—Watering gardens, fields, sports grounds or the like
Definitions
- the present invention relates to a measurement apparatus and a measurement method that measure a supplied amount of a liquid, and further relates to a computer-readable recording medium where a program for realizing these is recorded.
- irrigation has been performed in order to maintain an appropriate amount of soil moisture in the entire field.
- main irrigation methods for example, (1) furrow irrigation, (2) sprinkler irrigation, and (3) drip irrigation are known.
- Furrow irrigation is primitive irrigation and is not suitable for a large-scale field in terms of efficiency of utilizing irrigation water (liquid).
- Sprinkler irrigation is a method in which irrigation water is sprinkled using a sprinkler, and is suitable for a large-scale field. Also, according to sprinkler irrigation, equipment cost can be significantly reduced as compared with the drip irrigation described later.
- Drip irrigation is a method in which a drip tube for irrigation is laid in a field and irrigation water is supplied so as to drip on an agricultural crop from a drip provided in the drip tube.
- irrigation water can be supplied in a pinpoint manner to roots of the crop, so drip irrigation can be managed more delicately than (1) furrow irrigation and (2) delicate sprinkler irrigation.
- a liquid obtained by mixing fertilizer with water can be used as irrigation water.
- fertilizer is supplied in a state mixed with water, so delicate fertilizer management is possible.
- drip irrigation is suitable for cultivation of agricultural crops such as tomatoes that require delicate water management and fertilizer management.
- drip irrigation although the equipment cost is high, an appropriate amount of water can be efficiently supplied to the agricultural crop, so compared to sprinkler irrigation, drip irrigation can supply water to the agricultural crop more reliably, and the amount of water used can be significantly reduced. Therefore, drip irrigation is mainly adopted when cultivating an agricultural crop that requires delicate management of the amount of soil moisture.
- Patent Document 1 discloses a system for mechanically controlling the supplied amount of irrigation water in irrigation. Specifically, in the system disclosed in Patent Document 1, the supplied amount of irrigation water is managed based on data output from a sensor and prediction data regarding the weather and moisture in the soil by opening a valve when judged that the amount of moisture in the soil has reached a lower limit, and closing the valve when judged that the amount of moisture has reached an upper limit.
- a worker in a field where drip irrigation is actually adopted, the amount of irrigation water supplied is often managed manually. Specifically, a worker, according to a plan formulated by a manager, opens a supply valve at a start date/time for supplying irrigation water, and closes the supply valve at an end date/time. Also, the worker creates a work record regarding this work.
- An example object of the present invention is to provide a measurement apparatus, a measurement method, and a computer-readable recording medium that manage the supplied amount of a liquid while suppressing an increase in the cost of equipment using a tubular structure.
- a measurement apparatus includes:
- a measurement method includes:
- a computer-readable recording medium includes a program recorded on the computer-readable recording medium and including instructions that cause a computer to carry out:
- FIG. 1 illustrates an example of a measurement apparatus.
- FIG. 2 illustrates an example of a system with the measurement apparatus.
- FIG. 3 is a perspective view showing an example of the structure of a detection unit.
- FIG. 4 shows a side view of a tubular structure and a measurement unit.
- FIGS. 5 A and 5 B show cross-sections of the tubular structure and the measurement unit.
- FIG. 5 A shows a case when the tubular structure is contracted
- FIG. 5 B shows a case when the tubular structure is expanded.
- FIG. 6 illustrates the relationship between pressure and time when supplying a liquid.
- FIG. 7 illustrates an example of operation of the measurement apparatus.
- FIG. 8 illustrates an example of a computer that realizes the measurement apparatus.
- FIGS. 1 to 8 an example embodiment of the present invention will be described with reference to FIGS. 1 to 8 .
- FIG. 1 illustrates an example of the measurement apparatus.
- the measurement apparatus 1 has a detection unit 2 , a time specification unit 3 , and a supplied amount calculation unit 4 . Also, the detection unit 2 has a measurement unit 5 and an output unit 6 . Further, the measurement device 1 shown in FIG. 1 is an apparatus capable of managing the supplied amount of a liquid while suppressing an increase in the cost of equipment (for example, drip irrigation equipment) using a tubular structure 7 .
- equipment for example, drip irrigation equipment
- the detection unit 2 detects a pressure according to a shape change of the tubular structure 7 , whose shape changes according to the supplied amount of a liquid that flows therein.
- the tubular structure 7 for example, is a tube (for example, an irrigation tube) configured using a material such as resin or rubber.
- the time specification unit 3 specifies, based on the pressure detected by the detection unit 2 , a supply time during which the liquid was supplied.
- the supplied amount calculation unit 4 calculates a supplied amount of the liquid based on the supply time.
- the measurement apparatus 1 can detect the pressure corresponding to the shape change of the tubular structure 7 by using the detection unit 2 , which is attached to the tubular structure 7 .
- the measurement unit 5 of the detection unit 2 is attached to the exterior portion of the tubular structure 7 , and the measurement apparatus 1 can measure the pressure (pressure sensitivity) that the tubular structure 7 applies to the measurement unit 5 according to the shape change of the tubular structure 7 .
- the supply time during which the liquid was supplied to the tubular structure 7 can be specified based on the detected pressure, it is possible to calculate the supplied amount of the liquid based on the supply time. As a result, the supplied amount of the liquid can be delicately managed.
- the liquid supply time can be specified, it is possible to confirm whether the supplied amount of the liquid was appropriate. That is, it is possible to confirm whether the supplied amount of the liquid was appropriate without using the work record created by a worker.
- the supplied amount of the irrigation water is precisely calculated by adding a flow meter to the drip irrigation equipment, or by adding a valve that can automatically adjust the supplied amount of the irrigation water.
- this requires cutting the irrigation tube to attach the flow meter or valve.
- such attachment increases the cost of the drip irrigation equipment.
- the manufacturer's warranty of the drip irrigation equipment will be voided.
- the risk of failure may increase.
- the detection unit 2 can be attached to the exterior portion of the irrigation tube without damaging the irrigation tube, so the manufacturer's warranty of the drip irrigation equipment will not be voided. Further, since the detection unit 2 is attached by merely winding the detection unit 2 around the irrigation tube, it is possible to suppress an increase in the cost of the drip irrigation equipment as compared with the conventional technology.
- FIG. 2 illustrates an example of a system with the measurement apparatus.
- the system 20 in the present example embodiment shown in FIG. 2 is an example in which the system 20 is applied in drip irrigation equipment. That is, in FIG. 2 , the system 20 is an example in which the system 20 is applied to a field 30 shown in FIG. 2 .
- the system 20 in addition to the measurement apparatus 1 with the detection unit 2 , has a supply tank 21 (a supply source), a flow measurement unit 22 , supply lines 23 ( 23 a , 23 b , 23 c , and 23 d ), drip lines 24 ( 24 a , 24 b , 24 c , and 24 d ), and valves 25 ( 25 a , 25 b , 25 c , and 25 d ).
- the field 30 is divided into four sections 31 along ridges.
- letters A to D in FIG. 2 are assigned to the respective sections 31 for the purpose of description.
- a plurality of ridges are provided in the field 30 , and a crop 40 is planted along the ridges.
- the supply tank 21 is a supply source that stores the liquid to be supplied to the crop 40 .
- the supply tank 21 is connected to the flow measurement unit 22 through a pipe for supplying the irrigation water.
- the liquid may be, for example, irrigation water or a liquid obtained by mixing fertilizer with water.
- the flow measurement unit 22 is installed in the supply tank 21 and measures the flow rate of the irrigation water supplied from the supply tank 21 to the field 30 through any of the supply lines 23 .
- the flow measurement unit 22 may be a pulse transmission-type flow meter.
- a pulse transmission-type flow meter outputs a pulse signal each time a set amount of fluid flows.
- the pulse signal is transmitted to an acquisition unit 26 of the measurement apparatus 1 by using wired or wireless communications or the like.
- the flow measurement unit 22 is not limited to being a pulse transmission-type flow meter.
- a supply line 23 (tubular structure 7 ) is a pipe that feeds the irrigation water of the supply tank 21 to the corresponding section 31 .
- the supply line 23 is an irrigation tube whose shape changes according to the supplied amount of the liquid flowing therein. Further, when any of the valves 25 ( 25 a to 25 d ) corresponding to the supply lines 23 ( 23 a to 23 d ) is opened, the irrigation water of the supply tank 21 is fed to the corresponding section 31 .
- a drip line 24 is a pipe branched from a supply line. Specifically, the drip line 24 is a common agricultural drip tube. Further, each of the drip lines 24 a to 24 d is arranged along a ridge of the corresponding section 31 .
- the drip line 24 a branches from the supply line 23 a
- the drip line 24 b branches from the supply line 23 b
- the drip line 24 c branches from the supply line 23 c
- the drip line 24 d branches from the supply line 23 d.
- each drip line 24 is provided with drips (not shown) at regular intervals in the longitudinal direction.
- the drips can irrigate a certain amount of irrigation water in a dripping manner, and supply an optimal amount of irrigation water to the crop 40 .
- a valve 25 is a valve that is opened when liquid is fed from the supply tank 21 to the section 31 .
- the valves 25 a , 25 b , 25 c , and 25 d are opened for a certain period of time in a preset order to supply the irrigation water to a target section 31 .
- the valves 25 are opened one by one in a preset order. That is, when supply of the irrigation water to the target section 31 is completed, one valve currently in an open state is closed, and after this closing, the next valve 25 is opened.
- the measurement apparatus 1 has the acquisition unit 26 in addition to the detection unit 2 , the time specification unit 3 , and the supplied amount calculation unit 4 .
- the detection unit 2 detects a pressure according to a shape change of the tubular structure 7 whose shape changes according to the supplied amount of the liquid that flows therein. Also, the detection unit 2 has the measurement unit 5 , the output unit 6 , and connection units 8 ( 8 a , 8 b , and 8 c ).
- FIG. 3 is a perspective view showing an example of the structure of a detection unit.
- FIG. 4 shows a side view of a tubular structure and a measurement unit.
- FIGS. 5 A and 5 B show cross-sections of the tubular structure and the measurement unit.
- FIG. 5 A shows a case when the tubular structure is contracted
- FIG. 5 B shows a case when the tubular structure is expanded.
- the detection unit 2 is connected in a state with the connection unit 8 a fixed to one end (a tip side) of the measurement unit 5 , and is connected in a state with the connection unit 8 b fixed to the other end (a base end side) of the measurement unit 5 .
- the connection unit 8 c is connected in a state fixed to either the connection unit 8 a or the connection unit 8 b . Further, the length of the connection unit 8 c can be adjusted.
- the detection unit 2 can be wound around the tubular structure 7 by connecting and fixing the connection unit 8 a and the connection unit 8 c . Therefore, the detection unit 2 can be attached without damaging the tubular structure 7 .
- the method of attaching the detection unit 2 to the tubular structure 7 is not limited to the winding method described above, and it is sufficient that it is possible to attach the detection unit 2 to the tubular structure 7 and measure pressure.
- the detection unit 2 may be spirally wound around the tubular structure 7 .
- the measurement unit 5 measures the pressure generated by contact between a pressure detection side 5 a of the measurement unit 5 and the exterior portion of the tubular structure 7 .
- the measurement unit 5 is a pressure-sensitive sensor or the like that measures the pressure applied to the pressure detection side 5 a by the exterior portion of the tubular structure 7 .
- the pressure-sensitive sensor it is conceivable to use a pressure-sensitive sensor using a pressure-sensitive resistor.
- a pressure-sensitive sensor using a pressure-sensitive resistor has a characteristic that resistance decreases as the pressure applied to the measuring unit 5 increases.
- the pressure-sensitive sensor is not limited to being a sensor using a pressure-sensitive resistor, and another pressure-sensitive sensor may be used.
- the tubular structure 7 contracts (flattens). Therefore, since the pressure detected by the measurement unit 5 is small, the resistance value of the measurement unit 5 becomes large.
- FIG. 5 B when the supplied amount of the liquid flowing inside the tubular structure 7 is large, the tubular structure 7 expands (swells). Therefore, the pressure detected by the measurement unit 5 becomes large, and the resistance value of the measurement unit 5 becomes small. Therefore, when the supplied amount of the liquid flowing inside the tubular structure 7 exceeds a predetermined amount, at least a certain pressure is applied to the measurement unit 5 from the exterior portion, so the resistance value measured by the measurement unit 5 is a certain value or less.
- the measurement unit 5 sends the measurement value corresponding to the resistance value to the output unit 6 .
- the measurement value conceivably is, for example, a voltage value, a current value, or the like corresponding to the resistance value.
- the output unit 6 When the measurement value is acquired, the output unit 6 generates data (digital information or an analog signal) representing the acquired measurement value and transmits this to the acquisition unit 26 . Specifically, the output unit 6 transmits the above-mentioned data and identification information corresponding to the section 31 to the acquisition unit 26 by using wired or wireless communications or the like.
- the acquisition unit 26 uses wired or wireless communications or the like, receives field identification information that identifies the sections 31 (A to D) of the field 30 , date/time information indicating the date/time, and data representing the measurement value corresponding to the measured pressure, which were sent from the detection unit 2 . Further, the acquisition unit 26 , using wired or wireless communications or the like, receives date/time information indicating the date/time, and data measured by the flow measurement unit 22 (for example, such as a pulse signal), which were sent from the flow measurement unit 22 .
- the acquisition unit 26 sends the received data to the time specification unit 3 and the supplied amount calculation unit 4 . Also, the acquisition unit 26 stores data related to the detection unit 2 (the field identification information, the date/time information, and the data measured by the detection unit 2 ), and data related to the flow measurement unit 22 (the date/time information, and the data measured by the flow measurement unit 22 ), in a storage device (not shown) provided in the measurement apparatus 1 or a storage device (not shown) provided externally.
- the time specification unit 3 specifies, based on the pressure detected by the detection unit 2 , a supply time during which the liquid was supplied. Specifically, when the pressure detected by the detection unit 2 is at least a predetermined value and the time during which the pressure is at least the predetermined value continues for at least a predetermined time, the time specification unit 3 sets the date/time when the pressure became at least the predetermined value as a start date/time of supply of the liquid. Also, when the pressure changes from at least the predetermined value to less than the predetermined value and the time during which the pressure is less than the predetermined value continues for at least a predetermined time, the time specification unit 3 sets the date/time when the pressure became less than the predetermined value as an end date/time of supply of the liquid.
- the time specification unit 3 will be specifically described using the system 20 shown in FIG. 2 .
- there is only one flow measurement unit 22 so the valves 25 a , 25 b , 25 c , and 25 d are opened one by one in a predetermined order to supply a predetermined amount of the irrigation water to the corresponding section 31 .
- FIG. 6 illustrates the relationship between pressure and time when supplying a liquid.
- the time specification unit 3 first acquires the measurement value from the detection unit 2 , which is attached to the supply line 23 that supplies the irrigation water to the section 31 .
- the time specification unit 3 determines whether or not the pressure is at least the predetermined value TH for at least a predetermined time SC from a time ST.
- the time specification unit 3 sets the date/time when the pressure became at least the predetermined value TH as the start date/time ST of supply of the liquid.
- the time specification unit 3 determines whether or not the pressure is less than the predetermined value TH for at least a predetermined time EC from a time ED.
- the time specification unit 3 sets the date/time when the pressure became less than the predetermined value as the end date/time ED of supply of the liquid.
- the time specification unit 3 uses the supply start date/time ST and the supply end date/time ED, specifies a supply time TP during which the irrigation water was supplied. Note that if the pressure is at least the predetermined value TH, the irrigation water is supplied to the crop 40 at a constant speed from the drips provided in the section 31 .
- the supplied amount calculation unit 4 calculates a supplied amount of the liquid during the supply time based on the supply time and the flow rate of the liquid that flows through the tubular structure 7 . Specifically, the supplied amount calculation unit 4 first calculates the supplied amount of the liquid based on the number of times a pulse signal output by the flow measurement unit 22 was acquired. For example, a supplied amount FF of the liquid is calculated by multiplying a preset flow rate per pulse by the number of times a pulse was acquired.
- the supplied amount calculation unit 4 will be specifically described using the system 20 shown in FIG. 2 .
- the supplied amount calculation unit 4 calculates the supplied amount FR of the irrigation water in the section 31 (A) using the supply time TP in the section 31 (A) corresponding to the valve 25 a and the supplied amount FF of the irrigation water per unit time.
- the supplied amount calculation unit 4 calculates the supplied amount FR of the irrigation water in the section 31 (B) using the supply time TP in the section 31 (B) corresponding to the valve 25 b and the supplied amount FF of the irrigation water per unit time.
- the supplied amount calculation unit 4 calculates the supplied amount FR of the irrigation water for the sections 31 (C) and (D).
- the supplied amount calculation unit 4 used the supplied amount FF measured by the flow measurement unit 22 .
- the supplied amount calculation unit 4 uses a number N of drips provided in each section 31 and a supplied amount FD of the irrigation water per unit time supplied from one drip.
- a supplied amount of fertilizer in liquid obtained by mixing the liquid with the fertilizer is calculated.
- the supplied amount calculation unit 4 calculates a supplied amount FP of the fertilizer during the supply time TP by multiplying the supply time TP in the section 31 , the supplied amount FF of the liquid per unit time in the section 31 , and a mixing ratio R. See Formula 3.
- FR TP ⁇ FF ⁇ R (Formula 3)
- the supplied amount calculation unit 4 calculated the supplied amount of the fertilizer using the supplied amount FF measured by the flow measurement unit 22 , but in this third modified example, the supplied amount calculation unit 4 uses the number N of drips provided in each section 31 and the supplied amount FD of the irrigation water per unit time supplied from one drip.
- FIG. 7 illustrates an example of operation of the measurement apparatus.
- FIGS. 2 to 6 will be referred to as appropriate.
- a measurement method is implemented by operating the measurement apparatus 1 . Therefore, the description of the measurement method in the present example embodiment is replaced with the following description of the operation of the measurement apparatus.
- the acquisition unit 26 uses wired or wireless communications or the like, acquires date/time information indicating the date/time, data transmitted from the detection unit 2 , and data transmitted from the flow measurement unit 22 (step A 1 ).
- step A 1 the acquisition unit 26 receives data related to the detection unit 2 (field identification information, date/time information, and data corresponding to the pressure measured by the detection unit 2 ), which was transmitted from the detection unit 2 . Also, the acquisition unit 26 , using wired or wireless communications or the like, receives data related to the flow measurement unit 22 (date/time information, and data corresponding to the flow rate measured by the flow measurement unit 22 (such as a pulse signal)), which was transmitted from the flow measurement unit 22 .
- step A 1 the acquisition unit 26 sends the received data to the time specification unit 3 and the supplied amount calculation unit 4 . Also, the acquisition unit 26 stores the date/time information indicating the date/time, the data transmitted from the detection unit 2 , and the pulse signal transmitted from the flow measurement unit 22 in a storage device (not shown) provided in the measurement device 1 or in a storage device (not shown) provided externally.
- the time specification unit 3 specifies the supply time during which the liquid was supplied based on the pressure detected by the detection unit 2 (step A 2 ).
- step A 2 when the pressure detected by the detection unit 2 is at least a predetermined value and the time during which the pressure is at least the predetermined value continues for at least a predetermined time, the time specification unit 3 sets the date/time when the pressure became at least the predetermined value as a start date/time of supply of the liquid. Also, when the pressure changes from at least the predetermined value to less than the predetermined value and the time during which the pressure is less than the predetermined value continues for at least a predetermined time, the time specification unit 3 sets the date/time when the pressure became less than the predetermined value as an end date/time of supply of the liquid.
- step A 2 when the pressure indicated by the measurement value becomes at least a predetermined value TH, the time specification unit 3 determines whether or not the pressure is at least the predetermined value TH for at least a predetermined time SC from a time ST.
- the time specification unit 3 sets the date/time when the pressure became at least the predetermined value TH as the start date/time ST of supply of the liquid.
- step A 2 when the pressure changes from at least the predetermined value TH to less than the predetermined value TH, the time specification unit 3 determines whether or not the pressure is less than the predetermined value TH for at least a predetermined time EC from a time ED.
- the time specification unit 3 sets the date/time when the pressure became less than the predetermined value as the end date/time ED of supply of the liquid.
- step A 2 the time specification unit 3 specifies the supply time TP during which irrigation water was supplied using the supply start date/time ST and the supply end date/time ED.
- the supplied amount calculation unit 4 calculates the supplied amount of the liquid during the supply time based on the supply time and the flow rate of the liquid that flows through the tubular structure 7 (step A 3 ).
- step A 3 the supplied amount calculation unit 4 first calculates the supplied amount of the liquid based on the number of times that a pulse signal output by the flow measurement unit 22 was acquired.
- the supplied amount FF of the liquid is calculated by multiplying the preset flow rate per pulse by the number of times a pulse was acquired.
- step A 3 the supplied amount calculation unit 4 calculates a supplied amount FR of the liquid during the supply time TP. Specifically, the supplied amount calculation unit 4 calculates the supplied amount FR of the liquid during the supply time TP by multiplying the supply time TP by the supplied amount FF of the liquid per unit time. See above Formula 1.
- the supplied amount calculation unit 4 calculates the supplied amount FR of the irrigation water in the section 31 (A) using the supply time TP in the section 31 (A) corresponding to the valve 25 a and the supplied amount FF of the irrigation water per unit time.
- the supplied amount calculation unit 4 calculates the supplied amount FR of the irrigation water in the section 31 (B) using the supply time TP in the section 31 (B) corresponding to the valve 25 b and the supplied amount FF of the irrigation water per unit time.
- the supplied amount calculation unit 4 calculates the supplied amount FR of the irrigation water in the section 31 (C) using the supply time TP in the section 31 (C) corresponding to the valve 25 c and the supplied amount FF of the irrigation water per unit time.
- the supplied amount calculation unit 4 calculates the supplied amount FR of the irrigation water in the section 31 (D) using the supply time TP in the section 31 (D) corresponding to the valve 25 d and the supplied amount FF of the irrigation water per unit time.
- the supplied amount calculation unit 4 generates performance data (step A 4 ).
- the performance data is, for example, data in which at least the liquid supply time TP (the period from ST to ED), the supplied amount FR of the liquid, the supplied amount FP of the fertilizer, the mixing ratio R, and the like are associated with each section 31 . Further, as the performance data, the total supplied amount of the liquid supplied to the field 30 shown in FIG. 2 may be included.
- step A 4 the supplied amount calculation unit 4 stores the performance data in the storage device described above.
- the performance data can be output to an unshown output device (for example, a monitor, a printer, or the like) configured to be connected to the measurement apparatus 1 .
- an unshown output device for example, a monitor, a printer, or the like
- the supplied amount calculation unit 4 when calculating the supplied amount FR of the liquid during the supply time TP, the supplied amount calculation unit 4 used the supplied amount FF measured by the flow measurement unit 22 .
- the supplied amount calculation unit 4 uses a number N of drips provided in each section 31 and a supplied amount FD of the irrigation water per unit time supplied from one drip to calculate the supplied amount FR. That is, in the modified example in step A 3 , the supplied amount calculation unit 4 calculates the supplied amount FR of the liquid during the supply time TP by multiplying the supply time TP in the section 31 , the number N of drips provided in that section 31 , and the supplied amount FD of the irrigation water per unit time supplied from one drip. See above Formula 2.
- a supplied amount of fertilizer in liquid obtained by mixing the liquid with the fertilizer may be calculated.
- the supplied amount calculation unit 4 calculates a supplied amount FP of the fertilizer during the supply time TP by multiplying the supply time TP in the section 31 , the supplied amount FF of the liquid per unit time in the section 31 , and a mixing ratio R. See above Formula 3.
- the supplied amount calculation unit 4 may calculate the supplied amount of the fertilizer using the number N of drips provided in each section 31 and the supplied amount FD of the irrigation water per unit time supplied from one drip.
- the supplied amount calculation unit 4 calculates the supplied amount FP of the fertilizer during the supply time TP by multiplying the supply time TP in the section 31 , the number N of drips provided in that section 31 , the supplied amount FD of the irrigation water per unit time supplied from one drip, and the mixing ratio R. See above Formula 4.
- the measurement apparatus 1 can detect the pressure corresponding to the shape change of the tubular structure 7 by using the detection unit 2 , which is attached to the tubular structure 7 .
- the measurement unit 5 of the detection unit 2 is attached to the exterior portion of the tubular structure 7 , and the measurement apparatus 1 can measure the pressure (pressure sensitivity) that the tubular structure 7 applies to the measurement unit 5 according to the shape change of the tubular structure 7 .
- the supply time during which the liquid was supplied to the tubular structure 7 can be specified based on the detected pressure, it is possible to calculate the supplied amount of the liquid based on the supply time. As a result, the supplied amount of the liquid can be delicately managed.
- the supplied amount of the fertilizer can be calculated based on the supply time and the fertilizer mixing ratio, so it is possible to delicately manage the supplied amount of the fertilizer. For example, this can be used for agricultural regulation of the fertilizer.
- the liquid supply time can be specified, it is possible to confirm whether the supplied amount of the liquid was appropriate. That is, it is possible to confirm whether the supplied amount of the liquid was appropriate without using the work record created by a worker.
- the detection unit 2 can be attached to the exterior portion of the irrigation tube without damaging the irrigation tube, so it is possible to avoid voiding the manufacturer's warranty of the drip irrigation equipment. Further, since the detection unit 2 is attached by merely winding the detection unit 2 around the irrigation tube, it is possible to suppress an increase in the cost of the drip irrigation equipment as compared with the conventional technology.
- the program according to an example embodiment of the present invention may be a program that causes a computer to execute steps A 1 to A 3 shown in FIG. 7 .
- a processor of the computer functions as the acquisition unit 26 , the time specification unit 3 , and the supplied amount calculation unit 4 to performs processing.
- the program according to this example embodiment may be executed by a computer system constructed by a plurality of computers.
- each computer may respectively function as any of the acquisition unit 26 , the time specification unit 3 , and the supplied amount calculation unit 4 .
- FIG. 8 illustrates an example of a computer that realizes the measurement apparatus according to an example embodiment of the present invention.
- a computer 110 includes a CPU (Central Processing Unit) 111 , a main memory 112 , a storage device 113 , an input interface 114 , a display controller 115 , a data reader/writer 116 , and a communications interface 117 . These units are each connected so as to be capable of performing data communications with each other through a bus 121 .
- the computer 110 may include a GPU (Graphics Processing Unit) or an FPGA (Field-Programmable Gate Array) in addition to the CPU 111 or in place of the CPU 111 .
- the CPU 111 opens the program (code) according to these example embodiments, which has been stored in the storage device 113 , in the main memory 112 and performs various operations by executing the program in a predetermined order.
- the main memory 112 is typically a volatile storage device such as a DRAM (Dynamic Random Access Memory).
- the program according to this example embodiment is provided in a state being stored in a computer-readable recording medium 120 . Note that the program according to this example embodiment may be distributed on the Internet, which is connected through the communications interface 117 .
- the input interface 114 mediates data transmission between the CPU 111 and an input device 118 , which may be a keyboard or mouse.
- the display controller 115 is connected to a display device 119 , and controls display on the display device 119 .
- the data reader/writer 116 mediates data transmission between the CPU 111 and the recording medium 120 , and executes reading of a program from the recording medium 120 and writing of processing results in the computer 110 to the recording medium 120 .
- the communications interface 117 mediates data transmission between the CPU 111 and other computers.
- CF Compact Flash (registered trademark)
- SD Secure Digital
- a magnetic recording medium such as a Flexible Disk
- an optical recording medium such as a CD-ROM (Compact Disk Read-Only Memory)
- CD-ROM Compact Disk Read-Only Memory
- the measurement apparatus 1 can also be realized by using hardware corresponding to each unit. Furthermore, a portion of the measurement apparatus 1 may be realized by a program, and the remaining portion realized by hardware.
- a measurement apparatus including:
- a measurement method including:
- a computer-readable recording medium including a program recorded thereon, the program including instructions that cause a computer to carry out:
- the present invention it is possible to manage the supplied amount of a liquid while suppressing an increase in the cost of equipment using a tubular structure.
- the present invention is useful for equipment using a tubular structure, particularly drip irrigation equipment.
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- Physics & Mathematics (AREA)
- Life Sciences & Earth Sciences (AREA)
- General Physics & Mathematics (AREA)
- Fluid Mechanics (AREA)
- Engineering & Computer Science (AREA)
- Water Supply & Treatment (AREA)
- Environmental Sciences (AREA)
- Soil Sciences (AREA)
- Electromagnetism (AREA)
- Measuring Volume Flow (AREA)
- Signal Processing For Digital Recording And Reproducing (AREA)
- Optical Recording Or Reproduction (AREA)
Abstract
Description
- Patent Document 1: Japanese Patent Laid-Open Publication No. 2004-124599
-
- a detection unit configured to detect a pressure according to a shape change of a tubular structure whose shape changes according to a supplied amount of a liquid that flows therein;
- a time specification unit configured to specify, based on the pressure detected by the detection unit, a supply time during which the liquid was supplied; and
- a supplied amount calculation unit configured to calculate a supplied amount of the liquid based on the supply time.
-
- (a) a step of detecting a pressure according to a shape change of a tubular structure whose shape changes according to a supplied amount of a liquid that flows therein;
- (b) a step of specifying, based on the detected pressure, a supply time during which the liquid was supplied; and
- (c) a step of calculating a supplied amount of the liquid based on the supply time.
-
- (a) a step of acquiring a pressure according to a shape change of a tubular structure whose shape changes according to a supplied amount of a liquid that flows therein;
- (b) a step of specifying, based on the acquired pressure, a supply time during which the liquid was supplied; and
- (c) a step of calculating a supplied amount of the liquid based on the supply time.
FR=TP×FF (Formula 1)
-
- FR: Supplied amount of liquid during supply time
- TP: Supply time (period from ST to ED)
- FF: Supplied amount of liquid per unit time
FR=TP×N×FD (Formula 2)
-
- FR: Supplied amount of liquid during supply time
- TP: Supply time (period from ST to ED)
- N: Number of drips in section
- FD: Supplied amount of liquid per unit time supplied from one drip
FR=TP×FF×R (Formula 3)
-
- FP: Supplied amount of fertilizer during supply time
- TP: Supply time (period from ST to ED)
- FF: Supplied amount of liquid per unit time
- R: Mixing ratio
FP=TP×N×FD×R (Formula 4)
-
- FP: Supplied amount of fertilizer during supply time
- TP: Supply time (period from ST to ED)
- N: Number of drips in section
- FD: Supplied amount of liquid per unit time supplied from one drip
- R: Mixing ratio
[Apparatus Operations]
-
- a detection unit configured to detect a pressure according to a shape change of a tubular structure whose shape changes according to a supplied amount of a liquid that flows therein;
- a time specification unit configured to specify, based on the pressure detected by the detection unit, a supply time during which the liquid was supplied; and
- a supplied amount calculation unit configured to calculate a supplied amount of the liquid based on the supply time.
(Supplementary Note 2)
-
- wherein the detection unit includes:
- a measurement unit that is attached to an exterior portion of the tubular structure, and is configured to measure a measurement value corresponding to the pressure that occurs due to contact with the exterior portion, and
- an output unit configured to output information or a signal representing the measurement value to the time specification unit.
(Supplementary Note 3)
-
- wherein when the pressure detected by the detection unit is at least a predetermined value and the time during which the pressure is at least the predetermined value continues for at least a predetermined time, the time specification unit sets the date/time when the pressure became at least the predetermined value as a start date/time of supply of the liquid, and when the pressure changes from at least the predetermined value to less than the predetermined value and the time during which the pressure is less than the predetermined value continues for at least a predetermined time, the time specification unit sets the date/time when the pressure became less than the predetermined value as an end date/time of supply of the liquid.
(Supplementary Note 4)
- wherein when the pressure detected by the detection unit is at least a predetermined value and the time during which the pressure is at least the predetermined value continues for at least a predetermined time, the time specification unit sets the date/time when the pressure became at least the predetermined value as a start date/time of supply of the liquid, and when the pressure changes from at least the predetermined value to less than the predetermined value and the time during which the pressure is less than the predetermined value continues for at least a predetermined time, the time specification unit sets the date/time when the pressure became less than the predetermined value as an end date/time of supply of the liquid.
-
- wherein the supplied amount calculation unit calculates the supplied amount of the liquid during the supply time based on the supply time and a supplied amount per unit of the liquid that flows through the tubular structure.
(Supplementary Note 5)
- wherein the supplied amount calculation unit calculates the supplied amount of the liquid during the supply time based on the supply time and a supplied amount per unit of the liquid that flows through the tubular structure.
-
- wherein when feeding the liquid to a section obtained by dividing a field in which drip irrigation is adopted into a plurality of sections, a flow measurement unit is installed downstream of a supply source, the tubular structure that feeds the liquid to the section is installed, and the detection unit is attached to the tubular structure installed in the section, and
- the supplied amount calculation unit calculates a supplied amount of the liquid during the supply time in the section based on the supply time in the section and a supplied amount per unit of the liquid calculated from a flow rate measured by the flow measurement unit.
(Supplementary Note 6)
-
- wherein when a fertilizer is mixed with the liquid using a specific mixing ratio, the supplied amount calculation unit calculates a supplied amount of the fertilizer during the supply time by using the supply time, a supplied amount per unit of the liquid, and the mixing ratio.
(Supplementary Note 7)
- wherein when a fertilizer is mixed with the liquid using a specific mixing ratio, the supplied amount calculation unit calculates a supplied amount of the fertilizer during the supply time by using the supply time, a supplied amount per unit of the liquid, and the mixing ratio.
-
- (a) a step of detecting a pressure according to a shape change of a tubular structure whose shape changes according to a supplied amount of a liquid that flows therein;
- (b) a step of specifying, based on the detected pressure, a supply time during which the liquid was supplied; and
- (c) a step of calculating a supplied amount of the liquid based on the supply time.
(Supplementary Note 8)
-
- wherein in the (b) step, when the detected pressure is at least a predetermined value and the time during which the pressure is at least the predetermined value continues for at least a predetermined time, the date/time when the pressure became at least the predetermined value is set as a start date/time of supply of the liquid, and when the pressure changes from at least the predetermined value to less than the predetermined value and the time during which the pressure is less than the predetermined value continues for at least a predetermined time, the date/time when the pressure became less than the predetermined value is set as an end date/time of supply of the liquid.
(Supplementary Note 9)
- wherein in the (b) step, when the detected pressure is at least a predetermined value and the time during which the pressure is at least the predetermined value continues for at least a predetermined time, the date/time when the pressure became at least the predetermined value is set as a start date/time of supply of the liquid, and when the pressure changes from at least the predetermined value to less than the predetermined value and the time during which the pressure is less than the predetermined value continues for at least a predetermined time, the date/time when the pressure became less than the predetermined value is set as an end date/time of supply of the liquid.
-
- wherein in the (c) step, a supplied amount of the liquid during the supply time is calculated based on the supply time and a supplied amount per unit of the liquid that flows through the tubular structure.
(Supplementary Note 10)
- wherein in the (c) step, a supplied amount of the liquid during the supply time is calculated based on the supply time and a supplied amount per unit of the liquid that flows through the tubular structure.
-
- wherein when feeding the liquid to a section obtained by dividing a field in which drip irrigation is adopted into a plurality of sections,
- in the (c) step, a supplied amount of the liquid during the supply time in the section is calculated based on the supply time in the section and a supplied amount per unit of the liquid calculated from a flow rate measured downstream of a supply source.
(Supplementary Note 11)
-
- wherein in the (c) step, when a fertilizer is mixed with the liquid using a specific mixing ratio, a supplied amount of the fertilizer during the supply time by using the supply time, a supplied amount per unit of the liquid, and the mixing ratio.
(Supplementary Note 12)
- wherein in the (c) step, when a fertilizer is mixed with the liquid using a specific mixing ratio, a supplied amount of the fertilizer during the supply time by using the supply time, a supplied amount per unit of the liquid, and the mixing ratio.
-
- (a) a step of acquiring a pressure according to a shape change of a tubular structure whose shape changes according to a supplied amount of a liquid that flows therein;
- (b) a step of specifying, based on the acquired pressure, a supply time during which the liquid was supplied; and
- (c) a step of calculating a supplied amount of the liquid based on the supply time.
(Supplementary Note 13)
-
- wherein in the (b) step, when the detected pressure is at least a predetermined value and the time during which the pressure is at least the predetermined value continues for at least a predetermined time, the date/time when the pressure became at least the predetermined value is set as a start date/time of supply of the liquid, and when the pressure changes from at least the predetermined value to less than the predetermined value and the time during which the pressure is less than the predetermined value continues for at least a predetermined time, the date/time when the pressure became less than the predetermined value is set as an end date/time of supply of the liquid.
(Supplementary Note 14)
- wherein in the (b) step, when the detected pressure is at least a predetermined value and the time during which the pressure is at least the predetermined value continues for at least a predetermined time, the date/time when the pressure became at least the predetermined value is set as a start date/time of supply of the liquid, and when the pressure changes from at least the predetermined value to less than the predetermined value and the time during which the pressure is less than the predetermined value continues for at least a predetermined time, the date/time when the pressure became less than the predetermined value is set as an end date/time of supply of the liquid.
-
- wherein in the (c) step, a supplied amount of the liquid during the supply time is calculated based on the supply time and a supplied amount per unit of the liquid that flows through the tubular structure.
(Supplementary Note 15)
- wherein in the (c) step, a supplied amount of the liquid during the supply time is calculated based on the supply time and a supplied amount per unit of the liquid that flows through the tubular structure.
-
- wherein when feeding the liquid to a section obtained by dividing a field in which drip irrigation is adopted into a plurality of sections,
- in the (c) step, a supplied amount of the liquid during the supply time in the section is calculated based on the supply time in the section and a supplied amount per unit of the liquid calculated from a flow rate measured downstream of a supply source.
(Supplementary Note 16)
-
- wherein in the (c) step, when a fertilizer is mixed with the liquid using a specific mixing ratio, a supplied amount of the fertilizer during the supply time is calculated by using the supply time, a supplied amount per unit of the liquid, and the mixing ratio.
-
- 1 Measurement apparatus
- 2 Detection unit
- 3 Time specification unit
- 4 Supplied amount calculation unit
- 5 Measurement unit
- 5 a Pressure detection side
- 6 Output unit
- 7 Tubular structure
- 8 a, 8 b, 8 c Connection unit
- 20 System
- 21 Supply tank
- 22 Flow measurement unit
- 23, 23 a, 23 b, 23 c, 23 d Supply line
- 24, 24 a, 24 b, 24 c, 24 d Drip line
- 25, 25 a, 25 b, 25 c, 25 d Valve
- 26 Acquisition unit
- 30 Field
- 31 Section
- 40 Crop
- 110 Computer
- 111 CPU
- 112 Main memory
- 113 Storage device
- 114 Input interface
- 115 Display controller
- 116 Data reader/writer
- 117 Communications interface
- 118 Input device
- 119 Display device
- 120 Recording medium
- 121 Bus
Claims (10)
Applications Claiming Priority (3)
Application Number | Priority Date | Filing Date | Title |
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JP2018-172724 | 2018-09-14 | ||
JP2018172724A JP6642669B1 (en) | 2018-09-14 | 2018-09-14 | Measuring device, measuring method, and program |
PCT/JP2019/032189 WO2020054315A1 (en) | 2018-09-14 | 2019-08-16 | Measurement device, measurement method, and computer-readable recording medium |
Publications (2)
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US20220049981A1 US20220049981A1 (en) | 2022-02-17 |
US11828633B2 true US11828633B2 (en) | 2023-11-28 |
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US17/275,445 Active 2040-07-31 US11828633B2 (en) | 2018-09-14 | 2019-08-16 | Measurement apparatus, measurement method, and computer-readable recording medium |
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US (1) | US11828633B2 (en) |
EP (1) | EP3851810B1 (en) |
JP (1) | JP6642669B1 (en) |
ES (1) | ES2940337T3 (en) |
PT (1) | PT3851810T (en) |
WO (1) | WO2020054315A1 (en) |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20230086588A1 (en) * | 2021-09-23 | 2023-03-23 | Cjc Holdings, Llc | Surge irrigation system and method of use |
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Also Published As
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WO2020054315A1 (en) | 2020-03-19 |
EP3851810A4 (en) | 2021-11-10 |
ES2940337T3 (en) | 2023-05-05 |
EP3851810B1 (en) | 2023-01-04 |
EP3851810A1 (en) | 2021-07-21 |
US20220049981A1 (en) | 2022-02-17 |
JP2020043773A (en) | 2020-03-26 |
PT3851810T (en) | 2023-01-13 |
JP6642669B1 (en) | 2020-02-12 |
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